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Updated: Sep 17, 2025

A Method for Measuring RNA N6-methyladenosine Modifications in Cells and Tissues
Published on: December 5, 2016
Passive shaping of intra- and intercellular m6A dynamics via mRNA metabolism
David Dierks1, Ran Shachar1, Ronit Nir1
1Department of Molecular Genetics, Weizmann Institute of Science, Rehovot, Israel.
Abstract:
m6A is the most widespread mRNA modification and is primarily implicated in controlling mRNA stability. Fundamental questions pertaining to m6A are the extent to which it is dynamically modulated within cells and across stimuli, and the forces underlying such modulation. Prior work has focused on investigating active mechanisms governing m6A levels, such as recruitment of m6A writers or erasers leading to either 'global' or 'site-specific' modulation. Here, we propose that changes in m6A levels across subcellular compartments and biological trajectories may result from passive changes in gene-level mRNA metabolism. To predict the intricate interdependencies between m6A levels, mRNA localization, and mRNA decay, we establish a differential model 'm6ADyn' encompassing mRNA transcription, methylation, export, and m6A-dependent and -independent degradation. We validate the predictions of m6ADyn in the context of intracellular m6A dynamics, where m6ADyn predicts associations between relative mRNA localization and m6A levels, which we experimentally confirm. We further explore m6ADyn predictions pertaining to changes in m6A levels upon controlled perturbations of mRNA metabolism, which we also experimentally confirm. Finally, we demonstrate the relevance of m6ADyn in the context of cellular heat stress response, where genes subjected to altered mRNA product and export also display predictable changes in m6A levels, consistent with m6ADyn predictions. Our findings establish a framework for dissecting m6A dynamics and suggest the role of passive dynamics in shaping m6A levels in mammalian systems.
Insights
Changes in N6-methyladenosine (m6A) levels may passively arise from mRNA metabolism shifts, not just active processes. Our model, m6ADyn, predicts and confirms these dynamics in cellular responses.
Area of Science:
- Molecular Biology
- Epigenetics
- Systems Biology
Background:
- N6-methyladenosine (m6A) is the most abundant mRNA modification, crucial for regulating mRNA stability.
- Understanding the dynamic modulation of m6A levels and the underlying mechanisms is a fundamental question.
- Previous research focused on active mechanisms (writers/erasers) controlling m6A levels.
Purpose of the Study:
- To investigate if passive changes in mRNA metabolism influence m6A levels.
- To develop a predictive model for m6A dynamics, integrating mRNA metabolism, localization, and decay.
- To experimentally validate the model's predictions in various cellular contexts.
Main Methods:
- Development of a differential model, 'm6ADyn', simulating mRNA transcription, methylation, export, and degradation.
- Experimental validation of m6ADyn predictions using intracellular m6A dynamics.
- Testing m6ADyn predictions against controlled perturbations of mRNA metabolism and cellular heat stress response.
Main Results:
- m6ADyn accurately predicts associations between mRNA localization and m6A levels, experimentally confirmed.
- Model predictions regarding m6A level changes upon mRNA metabolism perturbations were experimentally validated.
- m6ADyn successfully predicted m6A dynamics during cellular heat stress response, linking it to altered mRNA processing and export.
Conclusions:
- Cellular m6A levels can be dynamically modulated by passive changes in mRNA metabolism and export.
- The m6ADyn model provides a framework for dissecting m6A dynamics in mammalian systems.
- Passive mRNA metabolism dynamics play a significant role in shaping cellular m6A landscapes.
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